Hybrid PET/MRI Insert: B0 Field Optimization by Applying Active and Passive Shimming on PET Detector Level

被引:2
作者
Wehner, Jakob [1 ]
Schulz, Volkmar [1 ,2 ]
机构
[1] Rhein Westfal TH Aachen, Inst Expt Mol Imaging, Dept Phys Mol Imaging Syst, D-52074 Aachen, Germany
[2] Philips Technol GmbH Innovat Technol, Res Labs, Dept Clin Applicat Res, D-52074 Aachen, Germany
关键词
Active and passive shimming; B-0; distortion; field optimization; field simulation; simultaneous PET/MRI; SILICON PHOTOMULTIPLIER; MR COMPATIBILITY; SYSTEM;
D O I
10.1109/TNS.2015.2394787
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The design of an MRI (Magnetic Resonance Imaging) compatible PET (Positron Emission Tomography) detector is regarded to be a challenging task since both imaging devices are likely interacting with each other potentially leading to performance degradation. A typically expected consequence of this interaction is the distortion of the MRI system's B-0 field homogeneity. The B-0 field gets distorted by any material with non-zero susceptibility brought into the MRI system. Typically, MRI machines have a so-called active shimming system available which allows the field optimization by using additional dedicated shim coils. However, this active shimming mechanism is limited and might not be capable to compensate localized higher order field patterns caused by e. g. a PET system. Since the high B-0 field quality is needed for an undisturbed MRI acquisition in general and especially for more advanced MR sequences (spectroscopic studies, sequences which utilizes spectral selective pre-pulses), the PET system's hardware needs to be designed carefully. Consequently, the typical design paradigm regarding this B-0 field distortion is the careful selection of all components according to their susceptibility (as low as possible). This design paradigm certainly limits the flexibility of the system design since worse performing components might be chosen over better alternatives because of their higher susceptibility. To overcome this limitation and to retain the MRI capabilities, we propose the application of localized shimming on PET detector level, meaning that the distortion profile caused by PET modules is compensated using either additional components such as magnetic materials (passive shimming) or DC coils (active shimming) on the PET modules or by intelligently arranging the hardware components of the PET detector. We have implemented a software framework which covers three parts: firstly, it calculates the B-0 distortion of various objects (susceptibility objects, conductor configuration). Secondly, it allows the characterization of magnetic objects by fitting the implemented models to data and thirdly, it performs a B-0 field homogenization of measured distortion maps by superimposing field disturbances of additional simulated objects. We tested this software framework in a first attempt with a single PET module of the Hyperion-IID scanner. The measured distortion map of the single PET module shows a strong localized B-0 distortion with a volume RMS value of about ppm. After optimization, the homogeneity of the simulated field distribution is strongly improved by a factor of 8 (volume RMS approximate to 0.075 ppm).
引用
收藏
页码:644 / 649
页数:6
相关论文
共 14 条
  • [1] The Digital Silicon Photomultiplier - A Novel Sensor for the Detection of Scintillation Light
    Degenhardt, Carsten
    Prescher, Gordian
    Frach, Thomas
    Thon, Andreas
    de Gruyter, Rik
    Schmitz, Anja
    Ballizany, Rob
    [J]. 2009 IEEE NUCLEAR SCIENCE SYMPOSIUM CONFERENCE RECORD, VOLS 1-5, 2009, : 2383 - 2386
  • [2] Dueppenbecker P., 2012, P IEEE NUCL SCI S ME, P3481, DOI [10.1109/NSSMIC.2012.6551794, DOI 10.1109/NSSMIC.2012.6551794]
  • [3] Exchange rates of creatine kinase metabolites: feasibility of imaging creatine by chemical exchange saturation transfer MRI
    Haris, Mohammad
    Nanga, Ravi Prakash Reddy
    Singh, Anup
    Cai, Kejia
    Kogan, Feliks
    Hariharan, Hari
    Reddy, Ravinder
    [J]. NMR IN BIOMEDICINE, 2012, 25 (11) : 1305 - 1309
  • [4] Hennel F, 1997, CONCEPT MAGNETIC RES, V9, P43, DOI 10.1002/(SICI)1099-0534(1997)9:1<43::AID-CMR4>3.0.CO
  • [5] 2-N
  • [6] MINUIT - SYSTEM FOR FUNCTION MINIMIZATION AND ANALYSIS OF PARAMETER ERRORS AND CORRELATIONS
    JAMES, F
    ROOS, M
    [J]. COMPUTER PHYSICS COMMUNICATIONS, 1975, 10 (06) : 343 - 367
  • [7] Application of a fourier-based method for rapid calculation of field inhomogeneity due to spatial variation of magnetic susceptibility
    Marques, JP
    Bowtell, R
    [J]. CONCEPTS IN MAGNETIC RESONANCE PART B-MAGNETIC RESONANCE ENGINEERING, 2005, 25B (01) : 65 - 78
  • [8] Positive contrast visualization of iron oxide-labeled stem cells using inversion-recovery with ON-Resonant water suppression (IRON)
    Stuber, Matthias
    Gilson, Wesley D.
    Schaer, Michael
    Kedziorek, Dorota A.
    Hofmann, Lawrence V.
    Shah, Saurabh
    Vonken, Evert-Jan
    Bulte, Jeff W. M.
    Kraitchman, Dara L.
    [J]. MAGNETIC RESONANCE IN MEDICINE, 2007, 58 (05) : 1072 - 1077
  • [9] In vivo imaging of glucose uptake and metabolism in tumors
    Walker-Samuel, Simon
    Ramasawmy, Rajiv
    Torrealdea, Francisco
    Rega, Marilena
    Rajkumar, Vineeth
    Johnson, S. Peter
    Richardson, Simon
    Goncalves, Miguel
    Parkes, Harold G.
    Arstad, Erik
    Thomas, David L.
    Pedley, R. Barbara
    Lythgoe, Mark F.
    Golay, Xavier
    [J]. NATURE MEDICINE, 2013, 19 (08) : 1067 - +
  • [10] Wehner J, 2014, EJNMMI PHYS, V1, P1, DOI DOI 10.1186/2197-7364-1-S1-A2